US6630677B1 - Electrostatic lens having glassy graphite electrodes - Google Patents
Electrostatic lens having glassy graphite electrodes Download PDFInfo
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- US6630677B1 US6630677B1 US09/943,570 US94357001A US6630677B1 US 6630677 B1 US6630677 B1 US 6630677B1 US 94357001 A US94357001 A US 94357001A US 6630677 B1 US6630677 B1 US 6630677B1
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- electrodes
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- electrostatic lens
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01J—ELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
- H01J37/00—Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
- H01J37/02—Details
- H01J37/04—Arrangements of electrodes and associated parts for generating or controlling the discharge, e.g. electron-optical arrangement or ion-optical arrangement
- H01J37/10—Lenses
- H01J37/12—Lenses electrostatic
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01J—ELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
- H01J37/00—Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
- H01J37/30—Electron-beam or ion-beam tubes for localised treatment of objects
- H01J37/317—Electron-beam or ion-beam tubes for localised treatment of objects for changing properties of the objects or for applying thin layers thereon, e.g. for ion implantation
- H01J37/3171—Electron-beam or ion-beam tubes for localised treatment of objects for changing properties of the objects or for applying thin layers thereon, e.g. for ion implantation for ion implantation
Definitions
- the present invention relates generally to ion implantation, and more particularly to the use of polished graphite as Einzel lens electrodes for reducing electrostatic discharge of high voltage during an ion implantation process in semiconductor manufacturing.
- Ion implantation uses charged particles (ions) to penetrate beneath a material's surface, which gives the material unique electronic, mechanical, or chemical properties. Ion implantation is deemed as a key technique in the semiconductor industry. It is also used in other manufacturing sectors for its demonstrated potential for hardening of surfaces and for enhancing the corrosion properties of metals.
- ion implantation techniques are used to introduce impurity atoms into semiconductors to alter the conductivity of the semiconductors in a controlled fashion.
- electrically charged ions are accelerated under the action of an electric field and implanted into a solid target, i.e., a semiconductor wafer.
- implanters sometimes inadvertently deposit contaminants onto wafer surfaces. These contaminants may be in the form of particles or ions and molecules of another species.
- the contaminants may be produced by the ion source and transported through the beamline, or generated by sputtering caused by energetic ions impinging on surfaces in the beamline, or caused by electrostatic discharges (arcing) within other components of the ion implantation system.
- Various implantation systems with capabilities for high current, high energy and low-energy ion implantation are available commercially, such as those manufactured by Axcelis Technologies, Inc., Applied Materials, Inc., and Varian Semiconductor Equipment Associates, to name a few.
- an electrostatic lens commonly called an Einzel lens
- Einzel lenses have electrodes which may be made of metal, metallic compounds, or high-purity graphite.
- Metal electrodes for Einzel lenses are not used for semiconductor devices (wafers) because undesirable metal contamination generated from the electrodes could result.
- graphite Einzel electrodes are employed on ion implanters in instances when low energy (typically 10 keV or below) beams are extracted from the ion source, and where low contamination content is a requirement, as in the semiconductor manufacturing industry.
- the use of graphite electrodes eliminates the problem of metal contamination, however, standard high-purity graphite electrodes have surface irregularities such as peaks or apexes which exist on the surface of the graphite. Since tens of kilovolts may be applied to the electrodes during an implant operation, these surface irregularities often lead to electrostatic discharges (arcing) from the electrodes, which results in high particulate contamination of the implanted wafers. In some cases, wafers damaged by an electrostatic discharge cannot be repaired due to the physical nature and extent of the damage. In addition, moisture may be trapped within the surface irregularities present on the electrode, which creates an additional impurity problem.
- FIG. 1 is a simplified diagram of an ion implanter showing incorporation of an electrostatic lens system according to at least one embodiment of the present invention
- FIG. 2 is a simplified diagram of an Einzel lens assembly according to at least one embodiment of the present invention.
- FIG. 3 is a simplified schematic diagram of an electrostatic lens system according to at least one embodiment of the present invention.
- FIG. 4 is a flow diagram of an ion implantation process according to at least one embodiment of the present invention.
- FIG. 5 is an illustration of a representative semiconductor device formed using the method according to at least one embodiment of the present invention.
- FIGS. 1-5 describe an electrostatic lens with highly-polished graphite electrodes in an ion implanter, and a method for use.
- the graphite electrodes as disclosed herein have been manufactured to be substantially smooth (glassy) such that irregularities on the surface grain of the graphite, for example peaks or apexes, are greatly reduced or no longer present.
- Conventional graphite electrodes have an average surface roughness (Ra) of about 0.15 to 0.20 microns, with peak-to-peak variations on the order of 20 to 30 micro s.
- the glassy, high-polish graphite electrodes may have a surface roughness (Ra) of about 10 Angstroms, with peak-to-peak variations being less than about 0.1 microns.
- the Ra of a silicon wafer is about 2 Angstroms.
- use of glassy graphite electrostatic lens electrodes does not require the time-consuming conditioning operations under vacuum that are typically needed with conventional graphite electrodes, eg., photoresist outgassing.
- the use of glassy electrodes as disclosed thus offers the advantage of increased uptime for an ion implantion system, which translates to increased productivity and decreased operating costs in a production environment such as semiconductor fabrication.
- the use of glassy graphite electrodes as disclosed offers another advantage over conventional graphite electrodes, namely that of electrostatic discharge reduction. Reduction of electrostatic discharge results in decreased particulate contamination from discharge events, as well as lessening of the probability of irrepairable physical damage to the semiconductor material.
- Ion implantion system 100 includes an ion source 105 for converting a gas or a solid material into an ion beam, a beamline and mass analyzing magnet assembly 110 for filtering ions from the beam, electrostatic (Einzel) lenses 115 for focusing ions in the beam during lower energy operations (10 keV or below), and an end station 120 with a rotating disk 122 for supporting semiconductor wafers 125 or other target workpieces in the path of the ion beam so that the desired species are implanted into semiconductor wafers 125 .
- ion source 105 for converting a gas or a solid material into an ion beam
- a beamline and mass analyzing magnet assembly 110 for filtering ions from the beam
- electrostatic (Einzel) lenses 115 for focusing ions in the beam during lower energy operations (10 keV or below)
- end station 120 with a rotating disk 122 for supporting semiconductor wafers 125 or other target workpieces in the path of the ion beam so that the desired species are implanted
- wafer 125 is not necessarily mounted on a rotating disk 122 , but may be mounted on any suitable wafer support device.
- End station 120 typically includes automated equipment for introducing and removing wafers 125 into and from ion implanter 100 , as well as a console for operating/monitoring/measuring the various parameters of ion implanter 100 , e.g., dose measurements, beam current, lens current, et cetera.
- Ion implantation system 100 includes additional components well known to those of skill in the art which are not shown in FIG. 1 .
- terminal electronics, gas box, power distribution components, vacuum components, power supplies for extraction, focusing, acceleration or deceleration, and the like are not shown.
- the complete pathway traversed by the ion beam is evacuated (under vacuum) during ion implantation operations.
- the ion beam may be distributed over the target area by beam scanning, by target movement, or by a combination of beam scanning and target movement.
- a variety of ion implantation systems are available commercially which can be modified to practice the teachings disclosed herein, for example implanters manufactured by Varian Semiconductor Equipment Associates, Axcelis Technologies, Inc., Applied Materials, Inc., and others.
- the electrostatic (Einzel) lens assembly includes an outer support structure 20 , and insulating material 25 positioned inside outer support structure 20 .
- a single Einzel lens 220 is shown in an enlarged view.
- a plurality of electrodes having a surface of glassy graphite, such as 203 , 205 , and 207 define an outer limit of an opening through which a charged-particle beam 201 passes. Even though the electrodes shown in FIG.
- the method described herein may utilize a range of electrostatic lens electrode configurations, i.e., plate, annular, field composable, and others, so long as the electrostatic lens configurations are compatible with other beam line elements of the implantation system.
- FIG. 3 A simplified schematic diagram of an electrostatic (Einzel) lens system according to an embodiment of the present disclosure is shown in FIG. 3 .
- the Einzel lens configuration depicted in FIG. 3 is similar to that used in Varian Ion Implant Systems VIISion series implanters, and is offered as an example of an Einzel (electrostatic) lens configuration which may be modified to practice the teachings disclosed herein.
- an Einzel lens system configuration which may be modified to practice the teachings disclosed herein.
- the electrostatic lens system or, more generally, ion optics system for adjusting the geometric characteristics of the charged-particle or ion beam 201 presented in FIG.
- a first Einzel lens 220 may be positioned on a charged-particle beam 201 receiving side, and a second Einzel lens 240 may be positioned on a charged-particle beam 201 emitting side.
- a set of electrodes 202 , 204 , and 206 form the Einzel lens 220 on the charged-particle beam 201 receiving side, while another set of electrodes 203 , 205 , and 207 form the second Einzel lens 240 on the charged-particle beam 201 emitting side.
- a Faraday system 230 may be positioned between the two Einzel lenses 220 and 240 . The Faraday system 230 is used in connection with measurements of ion beam 201 .
- a difference in potential is maintained between central electrode 204 and the two electrodes 202 and 206 surrounding the central electrode 204 .
- This configuration of an ion adjustment optics system in which the two electrodes surrounding the central electrode are at the same potential, prevents loss of energy as ion beam 201 passes through the ion optics system, and aids in shaping of the ion beam 201 diameter and focusing with regard to ion beam's 201 object focal point.
- this focusing onto the object focal point of a scanning element component (not shown) of an implanter is accomplished by combining adjustment of the supply high voltage for the ion source with adjustment of the supply voltage for the central electrodes 204 , 205 of Einzel lenses 220 and 240 .
- An embodiment of the present disclosure provides for the focusing electrodes such as 202 , 204 , 206 , within Einzel lens 220 , and 203 , 205 and 207 within Einzel lens 240 to be manufactured of high-purity graphite in a manner which results in the surface being substantially smooth (glassy) such that surface irregularities in the surface grain of the graphite are considerably reduced or not present.
- the focusing electrodes such as 202 , 204 , 206 , within Einzel lens 220 , and 203 , 205 and 207 within Einzel lens 240 to be manufactured of high-purity graphite in a manner which results in the surface being substantially smooth (glassy) such that surface irregularities in the surface grain of the graphite are considerably reduced or not present.
- only those electrodes such as 203 , 205 , and 207 of Einzel lens 240 need be of glassy construction.
- FIG. 4 An example of a typical utilization of an electrostatic (Einzel) lens system according to an embodiment of the present disclosure is shown in FIG. 4, a flow diagram of an ion implantation process in a semiconductor manufacturing environment.
- a state of high vacuum must be established within the implantation system, as seen in step 302 , before a plasma can be generated in step 304 .
- a charged-particle (ion) beam is extracted in step 306 .
- the transmission of the charged-particle beam is temporarily halted with a Faraday system in step 308 to enable loading of the semiconductor wafers into the end chamber of the implanter, as in step 310 .
- the charged-particle (ion) beam is passed through the Einzel lens system in step 311 , and voltage is applied to the electrodes to focus the beam in step 312 .
- the electrodes in the Einzel lens are of the glassy graphite type as disclosed herein.
- ions are implanted into the wafers, and the Einzel lens current and charged-particle beam current are monitored in step 314 .
- the monitoring in step 314 may be accomplished in real time, concurrent with implantation occurring in step 312 .
- the results of the implantation are measured.
- Step 316 may include, for example, determination of the number of defects added to a monitor wafer, as well as the amount of charge put into a wafer by ions from the implantation process. Should the measurement results indicate that the implantation process is within the desired specifications in step 318 , the ion beam would be stopped with the Faraday system and the wafers would be unloaded in step 320 . If the process is determined not to be within specifications in step 318 due to insufficient ion implantation, the process would resume at step 313 , with additional ion implantation.
- Semiconductor device 400 includes a semiconductor substrate 410 , gate dielectric 412 , gate electrode 414 , doped regions 416 , dielectric layer 418 , isolation regions 420 , metal layer 422 , and a passivation layer 424 .
- the processes used to form a semiconductor device as in FIG. 5 may employ the glassy graphite electrodes in an Einzel lens system as described in the various embodiments herein.
- an ion implanter employing the teachings of the present disclosure could be used to implant dopants into doped regions 416 .
- the method and apparatus herein provides for a flexible implementation.
- the disclosure is discussed herein primarily with regard to reduction of electrostatic discharges in an ion implantation device in a semiconductor fabrication process however, other manufacturing sectors requiring electrostatic discharge reduction in an ion implantation process may incorporate the teachings as disclosed herein within the operational parameters of their respective implantation system(s).
- various types of lens designs are currently available which could be adapted for use in employing the method as taught herein.
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US09/943,570 US6630677B1 (en) | 2001-08-29 | 2001-08-29 | Electrostatic lens having glassy graphite electrodes |
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US09/943,570 US6630677B1 (en) | 2001-08-29 | 2001-08-29 | Electrostatic lens having glassy graphite electrodes |
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Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN101777730A (en) * | 2010-04-09 | 2010-07-14 | 华中科技大学 | Designing method of graphite electrode of high energy pulse gas switch |
US20240047169A1 (en) * | 2022-08-08 | 2024-02-08 | Fei Company | Simple Spherical Aberration Corrector for SEM |
Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5138158A (en) * | 1988-07-15 | 1992-08-11 | Hitachi, Ltd. | Surface analysis method and apparatus |
US5444256A (en) * | 1992-12-17 | 1995-08-22 | Kabushiki Kaisha Toshiba | Electrostatic lens and method for producing the same |
US5869838A (en) * | 1996-09-11 | 1999-02-09 | Advanced Lithography Group | Field composable electrostatic lens system |
US6291828B1 (en) * | 1999-12-21 | 2001-09-18 | Axchlisrtechnologies, Inc. | Glass-like insulator for electrically isolating electrodes from ion implanter housing |
-
2001
- 2001-08-29 US US09/943,570 patent/US6630677B1/en not_active Expired - Lifetime
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5138158A (en) * | 1988-07-15 | 1992-08-11 | Hitachi, Ltd. | Surface analysis method and apparatus |
US5444256A (en) * | 1992-12-17 | 1995-08-22 | Kabushiki Kaisha Toshiba | Electrostatic lens and method for producing the same |
US5869838A (en) * | 1996-09-11 | 1999-02-09 | Advanced Lithography Group | Field composable electrostatic lens system |
US6291828B1 (en) * | 1999-12-21 | 2001-09-18 | Axchlisrtechnologies, Inc. | Glass-like insulator for electrically isolating electrodes from ion implanter housing |
Cited By (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN101777730A (en) * | 2010-04-09 | 2010-07-14 | 华中科技大学 | Designing method of graphite electrode of high energy pulse gas switch |
CN101777730B (en) * | 2010-04-09 | 2012-05-23 | 华中科技大学 | Design method of graphite electrode for high energy pulsed gas switch |
US20240047169A1 (en) * | 2022-08-08 | 2024-02-08 | Fei Company | Simple Spherical Aberration Corrector for SEM |
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